A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation

Leads in the sea ice pack have been extensively studied due to their climate relevance. An intense heat exchange between the ocean and the atmosphere occurs at leads in winter. As a result, a major salt input to the Arctic mixed layer is generated at these locations by brine rejection. Leads also co...

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Main Author: Alvarez, Alberto
Format: Text
Language:English
Published: 2020
Subjects:
Online Access:https://doi.org/10.5194/tc-2020-322
https://tc.copernicus.org/preprints/tc-2020-322/
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spelling ftcopernicus:oai:publications.copernicus.org:tcd90724 2023-05-15T15:08:05+02:00 A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation Alvarez, Alberto 2020-12-08 application/pdf https://doi.org/10.5194/tc-2020-322 https://tc.copernicus.org/preprints/tc-2020-322/ eng eng doi:10.5194/tc-2020-322 https://tc.copernicus.org/preprints/tc-2020-322/ eISSN: 1994-0424 Text 2020 ftcopernicus https://doi.org/10.5194/tc-2020-322 2020-12-14T17:22:15Z Leads in the sea ice pack have been extensively studied due to their climate relevance. An intense heat exchange between the ocean and the atmosphere occurs at leads in winter. As a result, a major salt input to the Arctic mixed layer is generated at these locations by brine rejection. Leads also constitute preferential melting locations in the early melting season, but their oceanography and climate relevance, if any, still remain unexplored during this period of the year. This study investigates the oceanographic circulation under a melted lead, resulting from the combined effect of the lead geometry, solar radiation and sea ice melting. Results derived from an idealized framework, suggest the daily generation of near surface convection cells that extend from the lead sides to the lead center. Convection cells disappear when melting is diminished during the period of minimum solar insolation. The cyclical generation and evolution of convection cells with the solar cycle, impacts the heat storage rate in the mixed layer below the lead. The contribution of this circulation pattern to the generation of the Near Surface Temperature Maximum (NSTM), is discussed in terms of its capability to inject warm surface waters below the open and sea ice surface. It has been suggested that the NSTM probably affects the oceanographic structure and acoustic properties of the upper ocean and the overlying ice cover. Text Arctic ice pack Sea ice Copernicus Publications: E-Journals Arctic
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description Leads in the sea ice pack have been extensively studied due to their climate relevance. An intense heat exchange between the ocean and the atmosphere occurs at leads in winter. As a result, a major salt input to the Arctic mixed layer is generated at these locations by brine rejection. Leads also constitute preferential melting locations in the early melting season, but their oceanography and climate relevance, if any, still remain unexplored during this period of the year. This study investigates the oceanographic circulation under a melted lead, resulting from the combined effect of the lead geometry, solar radiation and sea ice melting. Results derived from an idealized framework, suggest the daily generation of near surface convection cells that extend from the lead sides to the lead center. Convection cells disappear when melting is diminished during the period of minimum solar insolation. The cyclical generation and evolution of convection cells with the solar cycle, impacts the heat storage rate in the mixed layer below the lead. The contribution of this circulation pattern to the generation of the Near Surface Temperature Maximum (NSTM), is discussed in terms of its capability to inject warm surface waters below the open and sea ice surface. It has been suggested that the NSTM probably affects the oceanographic structure and acoustic properties of the upper ocean and the overlying ice cover.
format Text
author Alvarez, Alberto
spellingShingle Alvarez, Alberto
A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation
author_facet Alvarez, Alberto
author_sort Alvarez, Alberto
title A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation
title_short A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation
title_full A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation
title_fullStr A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation
title_full_unstemmed A model for the Artic mixed layer circulation under a melted lead: Implications on the near-surface temperature maximum formation
title_sort model for the artic mixed layer circulation under a melted lead: implications on the near-surface temperature maximum formation
publishDate 2020
url https://doi.org/10.5194/tc-2020-322
https://tc.copernicus.org/preprints/tc-2020-322/
geographic Arctic
geographic_facet Arctic
genre Arctic
ice pack
Sea ice
genre_facet Arctic
ice pack
Sea ice
op_source eISSN: 1994-0424
op_relation doi:10.5194/tc-2020-322
https://tc.copernicus.org/preprints/tc-2020-322/
op_doi https://doi.org/10.5194/tc-2020-322
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